DRIVE WHEEL
20240035555 ยท 2024-02-01
Assignee
Inventors
Cpc classification
F16H2055/366
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A drive wheel, comprising a drive disk, which has a traction-means connection region; and a shaft connection region, which can be rotated relative to the traction-means connection region against damping action of a torsional vibration damping device having a spring accommodation chamber. The spring accommodation chamber is filled with lubrication medium and is closed via a cover. The cover has a groove facing the drive disk and containing a sealing means.
Claims
1. A drive wheel comprising a drive disk, which has a traction-means connection region, and a shaft connection region, which can be rotated relative to the traction-means connection region against damping action of a torsional vibration damping device having a spring accommodation chamber, wherein the spring accommodation chamber is filled with lubrication medium and is closed via a cover, wherein the cover has a groove facing the drive disk and containing a sealing means.
2. The drive wheel according to claim 1, wherein the cover is press-fitted to the drive disk.
3. The drive wheel according to claim 1, wherein the cover is mounted on a support body in a radial direction.
4. The drive wheel according to claim 1, wherein the cover is produced from sheet metal solely via forming.
5. The drive wheel according to claim 4, wherein the cover remains unhardened after the forming.
6. The drive wheel according to claim 1, wherein the sealing means is positioned radially outwards in the groove.
7. The drive wheel according to claim 1, wherein an anaerobically hardened, thixotropic sealing means is used.
8. The drive wheel according to claim 1, wherein the drive disk and the cover form an interference fit with a first contact region and a second contact region, which are spaced apart from one another in an axial direction, wherein the groove is formed in the axial direction between the first contact region and the second contact region.
9. The drive wheel according to claim 8, wherein the sealing means rests radially on an inside between the first contact region and the second contact region on the drive disk and optionally on the cover.
10. A method for producing a drive wheel according to claim 1, comprising: providing the drive disk with the torsional vibration damping device; providing the cover; introducing a sealing means into the groove; press-fitting the cover into the drive disk; and applying a rotational movement to the drive disk and the cover so that the sealing means is forced radially outwards out of the groove via centrifugal force and a joining point between the drive disk and cover is sealed in an axial region.
11. A drive wheel, comprising: a drive disk having a traction-means connecting region and a shaft connecting region that is rotatable relative to the traction-means connecting region; a torsional vibration damping device arranged radially between the traction-means connecting region and the shaft connecting region, the torsional vibration damping device including a cover having a radially outer surface: contacting the drive disk at a first contacting region and at a second contacting region axially spaced from the first contacting region; and having a groove arranged axially between the first contacting region and the second contacting region; and sealing means arranged axially between the first contacting region and the second contacting region and radially between the cover and the drive disk.
12. The drive wheel of claim 11, wherein, prior to applying a rotational movement to the drive disk and the cover, the sealing means is arranged in the groove.
13. The drive wheel of claim 12, wherein, after applying a rotational movement to the drive disk and the cover, the sealing means is forced radially outward from the groove via centrifugal force.
14. The drive wheel of claim 13, wherein, after applying the rotational movement to the drive disk and the cover, the sealing means rests radially on an inside of the drive disk.
15. The drive wheel of claim 11, wherein the cover defines in part a spring accommodation chamber, the spring accommodation chamber being filled with a lubrication medium.
16. The drive wheel of claim 11, wherein the cover is press-fit into the drive disk.
17. The drive wheel of claim 11, wherein the cover is produced from sheet metal solely via forming.
18. The drive wheel of claim 17, wherein the cover remains unhardened after forming.
19. The drive wheel of claim 11, wherein an anaerobically hardened, thixotropic sealing means is used.
20. A drive wheel, comprising: an outer component; an inner component press-fit into the outer component, the inner component including a radially outer surface: contacting the outer component at a first contacting region and at a second contacting region axially spaced from the first contacting region; and having a groove arranged axially between the first contacting region and the second contacting region; and sealing means arranged axially between the first contacting region and the second contacting region and radially between the outer component and the inner component.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0026] Both the present disclosure and the technical field are explained in more detail below with reference to the figures. It should be noted that the present disclosure is not intended to be limited by the exemplary embodiments shown. In particular, unless explicitly stated otherwise, it is also possible to extract partial aspects of the subject matter outlined in the figures and to combine them with other components and knowledge from the present description and/or figures. In particular, it should be noted that the figures and in particular the size ratios shown are only schematic in nature. Identical reference symbols indicate the same objects, so that where applicable, explanations from other figures can also be used. In the figures:
[0027]
[0028]
[0029]
[0030]
[0031]
DETAILED DESCRIPTION
[0032]
[0033] The rotation of the drive wheel 1 takes place about a rotation axis 11. The drive disk 3 comprises a traction-means connection region 5 to which a traction means, not shown, such as a belt can be frictionally applied to transmit torque between the drive wheel 1 and the traction means. The drive wheel 1 also has a shaft connection region 8, via which the drive wheel 1 can be connected to a shaft, in particular a crankshaft of an internal combustion engine. In this way, torque can be transmitted in both directions between the internal combustion engine and an electrical assembly, such as an alternator or a starter generator, which is connected via the traction-means connection region 5 and a corresponding traction means.
[0034] Shaft connection region 8 and traction-means connection region 5 can be rotated relative to one another against a torsional vibration damping device 10. In this example, the torsional vibration damping device 10 comprises multiple springs 31, in particular bow springs, which are formed in a spring accommodation chamber 38 which is filled with a lubrication medium. In the example known from the prior art, the sealing essentially takes place via the first contact region A and the second contact region B. The first contact region A and the second contact region B are formed during press joining. It may be possible to specify the exact position of the first contact region A and/or the second contact region B through a rotary contour raised in this region during the manufacture of the interference fit.
[0035]
[0036]
[0037]
[0038] After the assembly process, the component is brought under the influence of speed. As a result, the sealing means 100 is conveyed outwards in the direction of centrifugal force and is placed in the interference fit to be sealed between the first contact region A and the second contact region B, and thus ensures the required sealing action. This is depicted in
[0039] By means of the described design of the drive wheel 1 and the assembly manufacturing method, the sealing means 100 is introduced into the appropriate region without the sealing means 100 getting outside of the interference fit. The sealing means 100 is then neither visible from the outside nor does it protrude into the spring accommodation chamber 38.
[0040] By introducing the groove 50 during the stamping/forming process, it is possible to carry out the interference fit without lathe machining of the cover 34/inner part, and to ensure the necessary tightness due to the additional sealing means 100.
LIST OF REFERENCE SYMBOLS
[0041] 1 Drive wheel [0042] 3 Drive disk [0043] 5 Traction-means connection region [0044] 8 Shaft connection region [0045] 9 Support body [0046] 10 Torsional vibration damping device [0047] 11 Axis of rotation [0048] 30 Spring device [0049] 31 Spring [0050] 34 Cover [0051] 38 Spring accommodation chamber [0052] 50 Groove [0053] 100 Sealing means [0054] A First contact region [0055] B Second contact region